tsb.c 14 KB

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  1. /* arch/sparc64/mm/tsb.c
  2. *
  3. * Copyright (C) 2006, 2008 David S. Miller <davem@davemloft.net>
  4. */
  5. #include <linux/kernel.h>
  6. #include <linux/preempt.h>
  7. #include <linux/slab.h>
  8. #include <asm/page.h>
  9. #include <asm/pgtable.h>
  10. #include <asm/mmu_context.h>
  11. #include <asm/tsb.h>
  12. #include <asm/tlb.h>
  13. #include <asm/oplib.h>
  14. extern struct tsb swapper_tsb[KERNEL_TSB_NENTRIES];
  15. static inline unsigned long tsb_hash(unsigned long vaddr, unsigned long hash_shift, unsigned long nentries)
  16. {
  17. vaddr >>= hash_shift;
  18. return vaddr & (nentries - 1);
  19. }
  20. static inline int tag_compare(unsigned long tag, unsigned long vaddr)
  21. {
  22. return (tag == (vaddr >> 22));
  23. }
  24. /* TSB flushes need only occur on the processor initiating the address
  25. * space modification, not on each cpu the address space has run on.
  26. * Only the TLB flush needs that treatment.
  27. */
  28. void flush_tsb_kernel_range(unsigned long start, unsigned long end)
  29. {
  30. unsigned long v;
  31. for (v = start; v < end; v += PAGE_SIZE) {
  32. unsigned long hash = tsb_hash(v, PAGE_SHIFT,
  33. KERNEL_TSB_NENTRIES);
  34. struct tsb *ent = &swapper_tsb[hash];
  35. if (tag_compare(ent->tag, v))
  36. ent->tag = (1UL << TSB_TAG_INVALID_BIT);
  37. }
  38. }
  39. static void __flush_tsb_one_entry(unsigned long tsb, unsigned long v,
  40. unsigned long hash_shift,
  41. unsigned long nentries)
  42. {
  43. unsigned long tag, ent, hash;
  44. v &= ~0x1UL;
  45. hash = tsb_hash(v, hash_shift, nentries);
  46. ent = tsb + (hash * sizeof(struct tsb));
  47. tag = (v >> 22UL);
  48. tsb_flush(ent, tag);
  49. }
  50. static void __flush_tsb_one(struct tlb_batch *tb, unsigned long hash_shift,
  51. unsigned long tsb, unsigned long nentries)
  52. {
  53. unsigned long i;
  54. for (i = 0; i < tb->tlb_nr; i++)
  55. __flush_tsb_one_entry(tsb, tb->vaddrs[i], hash_shift, nentries);
  56. }
  57. void flush_tsb_user(struct tlb_batch *tb)
  58. {
  59. struct mm_struct *mm = tb->mm;
  60. unsigned long nentries, base, flags;
  61. spin_lock_irqsave(&mm->context.lock, flags);
  62. base = (unsigned long) mm->context.tsb_block[MM_TSB_BASE].tsb;
  63. nentries = mm->context.tsb_block[MM_TSB_BASE].tsb_nentries;
  64. if (tlb_type == cheetah_plus || tlb_type == hypervisor)
  65. base = __pa(base);
  66. __flush_tsb_one(tb, PAGE_SHIFT, base, nentries);
  67. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  68. if (mm->context.tsb_block[MM_TSB_HUGE].tsb) {
  69. base = (unsigned long) mm->context.tsb_block[MM_TSB_HUGE].tsb;
  70. nentries = mm->context.tsb_block[MM_TSB_HUGE].tsb_nentries;
  71. if (tlb_type == cheetah_plus || tlb_type == hypervisor)
  72. base = __pa(base);
  73. __flush_tsb_one(tb, HPAGE_SHIFT, base, nentries);
  74. }
  75. #endif
  76. spin_unlock_irqrestore(&mm->context.lock, flags);
  77. }
  78. void flush_tsb_user_page(struct mm_struct *mm, unsigned long vaddr)
  79. {
  80. unsigned long nentries, base, flags;
  81. spin_lock_irqsave(&mm->context.lock, flags);
  82. base = (unsigned long) mm->context.tsb_block[MM_TSB_BASE].tsb;
  83. nentries = mm->context.tsb_block[MM_TSB_BASE].tsb_nentries;
  84. if (tlb_type == cheetah_plus || tlb_type == hypervisor)
  85. base = __pa(base);
  86. __flush_tsb_one_entry(base, vaddr, PAGE_SHIFT, nentries);
  87. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  88. if (mm->context.tsb_block[MM_TSB_HUGE].tsb) {
  89. base = (unsigned long) mm->context.tsb_block[MM_TSB_HUGE].tsb;
  90. nentries = mm->context.tsb_block[MM_TSB_HUGE].tsb_nentries;
  91. if (tlb_type == cheetah_plus || tlb_type == hypervisor)
  92. base = __pa(base);
  93. __flush_tsb_one_entry(base, vaddr, HPAGE_SHIFT, nentries);
  94. }
  95. #endif
  96. spin_unlock_irqrestore(&mm->context.lock, flags);
  97. }
  98. #define HV_PGSZ_IDX_BASE HV_PGSZ_IDX_8K
  99. #define HV_PGSZ_MASK_BASE HV_PGSZ_MASK_8K
  100. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  101. #define HV_PGSZ_IDX_HUGE HV_PGSZ_IDX_4MB
  102. #define HV_PGSZ_MASK_HUGE HV_PGSZ_MASK_4MB
  103. #endif
  104. static void setup_tsb_params(struct mm_struct *mm, unsigned long tsb_idx, unsigned long tsb_bytes)
  105. {
  106. unsigned long tsb_reg, base, tsb_paddr;
  107. unsigned long page_sz, tte;
  108. mm->context.tsb_block[tsb_idx].tsb_nentries =
  109. tsb_bytes / sizeof(struct tsb);
  110. base = TSBMAP_BASE;
  111. tte = pgprot_val(PAGE_KERNEL_LOCKED);
  112. tsb_paddr = __pa(mm->context.tsb_block[tsb_idx].tsb);
  113. BUG_ON(tsb_paddr & (tsb_bytes - 1UL));
  114. /* Use the smallest page size that can map the whole TSB
  115. * in one TLB entry.
  116. */
  117. switch (tsb_bytes) {
  118. case 8192 << 0:
  119. tsb_reg = 0x0UL;
  120. #ifdef DCACHE_ALIASING_POSSIBLE
  121. base += (tsb_paddr & 8192);
  122. #endif
  123. page_sz = 8192;
  124. break;
  125. case 8192 << 1:
  126. tsb_reg = 0x1UL;
  127. page_sz = 64 * 1024;
  128. break;
  129. case 8192 << 2:
  130. tsb_reg = 0x2UL;
  131. page_sz = 64 * 1024;
  132. break;
  133. case 8192 << 3:
  134. tsb_reg = 0x3UL;
  135. page_sz = 64 * 1024;
  136. break;
  137. case 8192 << 4:
  138. tsb_reg = 0x4UL;
  139. page_sz = 512 * 1024;
  140. break;
  141. case 8192 << 5:
  142. tsb_reg = 0x5UL;
  143. page_sz = 512 * 1024;
  144. break;
  145. case 8192 << 6:
  146. tsb_reg = 0x6UL;
  147. page_sz = 512 * 1024;
  148. break;
  149. case 8192 << 7:
  150. tsb_reg = 0x7UL;
  151. page_sz = 4 * 1024 * 1024;
  152. break;
  153. default:
  154. printk(KERN_ERR "TSB[%s:%d]: Impossible TSB size %lu, killing process.\n",
  155. current->comm, current->pid, tsb_bytes);
  156. do_exit(SIGSEGV);
  157. }
  158. tte |= pte_sz_bits(page_sz);
  159. if (tlb_type == cheetah_plus || tlb_type == hypervisor) {
  160. /* Physical mapping, no locked TLB entry for TSB. */
  161. tsb_reg |= tsb_paddr;
  162. mm->context.tsb_block[tsb_idx].tsb_reg_val = tsb_reg;
  163. mm->context.tsb_block[tsb_idx].tsb_map_vaddr = 0;
  164. mm->context.tsb_block[tsb_idx].tsb_map_pte = 0;
  165. } else {
  166. tsb_reg |= base;
  167. tsb_reg |= (tsb_paddr & (page_sz - 1UL));
  168. tte |= (tsb_paddr & ~(page_sz - 1UL));
  169. mm->context.tsb_block[tsb_idx].tsb_reg_val = tsb_reg;
  170. mm->context.tsb_block[tsb_idx].tsb_map_vaddr = base;
  171. mm->context.tsb_block[tsb_idx].tsb_map_pte = tte;
  172. }
  173. /* Setup the Hypervisor TSB descriptor. */
  174. if (tlb_type == hypervisor) {
  175. struct hv_tsb_descr *hp = &mm->context.tsb_descr[tsb_idx];
  176. switch (tsb_idx) {
  177. case MM_TSB_BASE:
  178. hp->pgsz_idx = HV_PGSZ_IDX_BASE;
  179. break;
  180. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  181. case MM_TSB_HUGE:
  182. hp->pgsz_idx = HV_PGSZ_IDX_HUGE;
  183. break;
  184. #endif
  185. default:
  186. BUG();
  187. }
  188. hp->assoc = 1;
  189. hp->num_ttes = tsb_bytes / 16;
  190. hp->ctx_idx = 0;
  191. switch (tsb_idx) {
  192. case MM_TSB_BASE:
  193. hp->pgsz_mask = HV_PGSZ_MASK_BASE;
  194. break;
  195. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  196. case MM_TSB_HUGE:
  197. hp->pgsz_mask = HV_PGSZ_MASK_HUGE;
  198. break;
  199. #endif
  200. default:
  201. BUG();
  202. }
  203. hp->tsb_base = tsb_paddr;
  204. hp->resv = 0;
  205. }
  206. }
  207. struct kmem_cache *pgtable_cache __read_mostly;
  208. static struct kmem_cache *tsb_caches[8] __read_mostly;
  209. static const char *tsb_cache_names[8] = {
  210. "tsb_8KB",
  211. "tsb_16KB",
  212. "tsb_32KB",
  213. "tsb_64KB",
  214. "tsb_128KB",
  215. "tsb_256KB",
  216. "tsb_512KB",
  217. "tsb_1MB",
  218. };
  219. void __init pgtable_cache_init(void)
  220. {
  221. unsigned long i;
  222. pgtable_cache = kmem_cache_create("pgtable_cache",
  223. PAGE_SIZE, PAGE_SIZE,
  224. 0,
  225. _clear_page);
  226. if (!pgtable_cache) {
  227. prom_printf("pgtable_cache_init(): Could not create!\n");
  228. prom_halt();
  229. }
  230. for (i = 0; i < 8; i++) {
  231. unsigned long size = 8192 << i;
  232. const char *name = tsb_cache_names[i];
  233. tsb_caches[i] = kmem_cache_create(name,
  234. size, size,
  235. 0, NULL);
  236. if (!tsb_caches[i]) {
  237. prom_printf("Could not create %s cache\n", name);
  238. prom_halt();
  239. }
  240. }
  241. }
  242. int sysctl_tsb_ratio = -2;
  243. static unsigned long tsb_size_to_rss_limit(unsigned long new_size)
  244. {
  245. unsigned long num_ents = (new_size / sizeof(struct tsb));
  246. if (sysctl_tsb_ratio < 0)
  247. return num_ents - (num_ents >> -sysctl_tsb_ratio);
  248. else
  249. return num_ents + (num_ents >> sysctl_tsb_ratio);
  250. }
  251. /* When the RSS of an address space exceeds tsb_rss_limit for a TSB,
  252. * do_sparc64_fault() invokes this routine to try and grow it.
  253. *
  254. * When we reach the maximum TSB size supported, we stick ~0UL into
  255. * tsb_rss_limit for that TSB so the grow checks in do_sparc64_fault()
  256. * will not trigger any longer.
  257. *
  258. * The TSB can be anywhere from 8K to 1MB in size, in increasing powers
  259. * of two. The TSB must be aligned to it's size, so f.e. a 512K TSB
  260. * must be 512K aligned. It also must be physically contiguous, so we
  261. * cannot use vmalloc().
  262. *
  263. * The idea here is to grow the TSB when the RSS of the process approaches
  264. * the number of entries that the current TSB can hold at once. Currently,
  265. * we trigger when the RSS hits 3/4 of the TSB capacity.
  266. */
  267. void tsb_grow(struct mm_struct *mm, unsigned long tsb_index, unsigned long rss)
  268. {
  269. unsigned long max_tsb_size = 1 * 1024 * 1024;
  270. unsigned long new_size, old_size, flags;
  271. struct tsb *old_tsb, *new_tsb;
  272. unsigned long new_cache_index, old_cache_index;
  273. unsigned long new_rss_limit;
  274. gfp_t gfp_flags;
  275. if (max_tsb_size > (PAGE_SIZE << MAX_ORDER))
  276. max_tsb_size = (PAGE_SIZE << MAX_ORDER);
  277. new_cache_index = 0;
  278. for (new_size = 8192; new_size < max_tsb_size; new_size <<= 1UL) {
  279. new_rss_limit = tsb_size_to_rss_limit(new_size);
  280. if (new_rss_limit > rss)
  281. break;
  282. new_cache_index++;
  283. }
  284. if (new_size == max_tsb_size)
  285. new_rss_limit = ~0UL;
  286. retry_tsb_alloc:
  287. gfp_flags = GFP_KERNEL;
  288. if (new_size > (PAGE_SIZE * 2))
  289. gfp_flags |= __GFP_NOWARN | __GFP_NORETRY;
  290. new_tsb = kmem_cache_alloc_node(tsb_caches[new_cache_index],
  291. gfp_flags, numa_node_id());
  292. if (unlikely(!new_tsb)) {
  293. /* Not being able to fork due to a high-order TSB
  294. * allocation failure is very bad behavior. Just back
  295. * down to a 0-order allocation and force no TSB
  296. * growing for this address space.
  297. */
  298. if (mm->context.tsb_block[tsb_index].tsb == NULL &&
  299. new_cache_index > 0) {
  300. new_cache_index = 0;
  301. new_size = 8192;
  302. new_rss_limit = ~0UL;
  303. goto retry_tsb_alloc;
  304. }
  305. /* If we failed on a TSB grow, we are under serious
  306. * memory pressure so don't try to grow any more.
  307. */
  308. if (mm->context.tsb_block[tsb_index].tsb != NULL)
  309. mm->context.tsb_block[tsb_index].tsb_rss_limit = ~0UL;
  310. return;
  311. }
  312. /* Mark all tags as invalid. */
  313. tsb_init(new_tsb, new_size);
  314. /* Ok, we are about to commit the changes. If we are
  315. * growing an existing TSB the locking is very tricky,
  316. * so WATCH OUT!
  317. *
  318. * We have to hold mm->context.lock while committing to the
  319. * new TSB, this synchronizes us with processors in
  320. * flush_tsb_user() and switch_mm() for this address space.
  321. *
  322. * But even with that lock held, processors run asynchronously
  323. * accessing the old TSB via TLB miss handling. This is OK
  324. * because those actions are just propagating state from the
  325. * Linux page tables into the TSB, page table mappings are not
  326. * being changed. If a real fault occurs, the processor will
  327. * synchronize with us when it hits flush_tsb_user(), this is
  328. * also true for the case where vmscan is modifying the page
  329. * tables. The only thing we need to be careful with is to
  330. * skip any locked TSB entries during copy_tsb().
  331. *
  332. * When we finish committing to the new TSB, we have to drop
  333. * the lock and ask all other cpus running this address space
  334. * to run tsb_context_switch() to see the new TSB table.
  335. */
  336. spin_lock_irqsave(&mm->context.lock, flags);
  337. old_tsb = mm->context.tsb_block[tsb_index].tsb;
  338. old_cache_index =
  339. (mm->context.tsb_block[tsb_index].tsb_reg_val & 0x7UL);
  340. old_size = (mm->context.tsb_block[tsb_index].tsb_nentries *
  341. sizeof(struct tsb));
  342. /* Handle multiple threads trying to grow the TSB at the same time.
  343. * One will get in here first, and bump the size and the RSS limit.
  344. * The others will get in here next and hit this check.
  345. */
  346. if (unlikely(old_tsb &&
  347. (rss < mm->context.tsb_block[tsb_index].tsb_rss_limit))) {
  348. spin_unlock_irqrestore(&mm->context.lock, flags);
  349. kmem_cache_free(tsb_caches[new_cache_index], new_tsb);
  350. return;
  351. }
  352. mm->context.tsb_block[tsb_index].tsb_rss_limit = new_rss_limit;
  353. if (old_tsb) {
  354. extern void copy_tsb(unsigned long old_tsb_base,
  355. unsigned long old_tsb_size,
  356. unsigned long new_tsb_base,
  357. unsigned long new_tsb_size);
  358. unsigned long old_tsb_base = (unsigned long) old_tsb;
  359. unsigned long new_tsb_base = (unsigned long) new_tsb;
  360. if (tlb_type == cheetah_plus || tlb_type == hypervisor) {
  361. old_tsb_base = __pa(old_tsb_base);
  362. new_tsb_base = __pa(new_tsb_base);
  363. }
  364. copy_tsb(old_tsb_base, old_size, new_tsb_base, new_size);
  365. }
  366. mm->context.tsb_block[tsb_index].tsb = new_tsb;
  367. setup_tsb_params(mm, tsb_index, new_size);
  368. spin_unlock_irqrestore(&mm->context.lock, flags);
  369. /* If old_tsb is NULL, we're being invoked for the first time
  370. * from init_new_context().
  371. */
  372. if (old_tsb) {
  373. /* Reload it on the local cpu. */
  374. tsb_context_switch(mm);
  375. /* Now force other processors to do the same. */
  376. preempt_disable();
  377. smp_tsb_sync(mm);
  378. preempt_enable();
  379. /* Now it is safe to free the old tsb. */
  380. kmem_cache_free(tsb_caches[old_cache_index], old_tsb);
  381. }
  382. }
  383. int init_new_context(struct task_struct *tsk, struct mm_struct *mm)
  384. {
  385. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  386. unsigned long huge_pte_count;
  387. #endif
  388. unsigned int i;
  389. spin_lock_init(&mm->context.lock);
  390. mm->context.sparc64_ctx_val = 0UL;
  391. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  392. /* We reset it to zero because the fork() page copying
  393. * will re-increment the counters as the parent PTEs are
  394. * copied into the child address space.
  395. */
  396. huge_pte_count = mm->context.huge_pte_count;
  397. mm->context.huge_pte_count = 0;
  398. #endif
  399. mm->context.pgtable_page = NULL;
  400. /* copy_mm() copies over the parent's mm_struct before calling
  401. * us, so we need to zero out the TSB pointer or else tsb_grow()
  402. * will be confused and think there is an older TSB to free up.
  403. */
  404. for (i = 0; i < MM_NUM_TSBS; i++)
  405. mm->context.tsb_block[i].tsb = NULL;
  406. /* If this is fork, inherit the parent's TSB size. We would
  407. * grow it to that size on the first page fault anyways.
  408. */
  409. tsb_grow(mm, MM_TSB_BASE, get_mm_rss(mm));
  410. #if defined(CONFIG_HUGETLB_PAGE) || defined(CONFIG_TRANSPARENT_HUGEPAGE)
  411. if (unlikely(huge_pte_count))
  412. tsb_grow(mm, MM_TSB_HUGE, huge_pte_count);
  413. #endif
  414. if (unlikely(!mm->context.tsb_block[MM_TSB_BASE].tsb))
  415. return -ENOMEM;
  416. return 0;
  417. }
  418. static void tsb_destroy_one(struct tsb_config *tp)
  419. {
  420. unsigned long cache_index;
  421. if (!tp->tsb)
  422. return;
  423. cache_index = tp->tsb_reg_val & 0x7UL;
  424. kmem_cache_free(tsb_caches[cache_index], tp->tsb);
  425. tp->tsb = NULL;
  426. tp->tsb_reg_val = 0UL;
  427. }
  428. void destroy_context(struct mm_struct *mm)
  429. {
  430. unsigned long flags, i;
  431. struct page *page;
  432. for (i = 0; i < MM_NUM_TSBS; i++)
  433. tsb_destroy_one(&mm->context.tsb_block[i]);
  434. page = mm->context.pgtable_page;
  435. if (page && put_page_testzero(page)) {
  436. pgtable_page_dtor(page);
  437. free_hot_cold_page(page, 0);
  438. }
  439. spin_lock_irqsave(&ctx_alloc_lock, flags);
  440. if (CTX_VALID(mm->context)) {
  441. unsigned long nr = CTX_NRBITS(mm->context);
  442. mmu_context_bmap[nr>>6] &= ~(1UL << (nr & 63));
  443. }
  444. spin_unlock_irqrestore(&ctx_alloc_lock, flags);
  445. }